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Automatic Target Recognition Based on High-Resolution Range Profiles with Unknown Circular Range Shift

机译:基于高分辨率范围曲线的自动目标识别,具有未知圆形距离

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In this paper, an automatic aircraft target recognition (ATR) framework is presented, which is based on the high resolution range profiles (HRRP) of aircraft targets. This work is divided into two major parts. First, we consider the generation of the HRRP, which includes the modeling and simulation of radar cross section (RCS), the design of step frequency waveform (SFW), and IFFT processing for HRRP synthesis. In practice, a possible circular shift of the received HRRP relative to the template HRRPs in target library may exist. In such a situation, we resort to the statistical classification technique to develop an ATR algorithm, which begins with using the Neyman Pearson criterion to determine whether a target is present or not, under a constant false alarm rate constraint. Then the circular correlation is used to estimate possible circular range shift, as well as the unknown phase shift and attenuation. Moreover, we adopt the Gram-Schmidt orthogonalization (GSO) procedure to construct a signal space, and then project the received HRRP onto the signal space. Finally, the target classification can be done in terms of maximum a posteriori (MAP) decision rule. Simulation results are also included to demonstrate the feasibility of this approach.
机译:在本文中,一个自动飞行器目标识别(ATR)框架被呈现,这是基于飞机目标的高分辨率距离(距离像)。这项工作分为两个主要部分。首先,我们考虑使用HRRP的生成,其中包括雷达横截面(RCS)的建模和仿真,步进频率波形(SFW)的设计,以及用于HRRP合成的IFFT处理。实际上,可能存在接收的HRRP相对于目标文库中的模板HRRP的可能圆周转变。在这种情况下,我们采取统计分类技术来开发ATR算法,该算法开始使用Neyman Pearson标准来确定是否在常量误报率约束下存在目标。然后,循环相关用于估计可能的圆形范围偏移,以及未知相移和衰减。此外,我们采用Gram-Schmidt正交化(GSO)程序来构建信号空间,然后将接收的HRRP投影到信号空间上。最后,可以根据最大后验(地图)决策规则来完成目标分类。还包括仿真结果以证明这种方法的可行性。

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